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Term mining for relation visualization and exploration — Some practical applications in crime investigation

机译:关于关系可视化和探索的一期挖掘 - 犯罪调查中的一些实际应用

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An efficient term mining method to build a general term network is presented for entity relation visualization and exploration. Terms from each document in the corpus are first identified. They are subjected to an analysis for their association weights, which are accumulated over all the documents for each term pair. The resulting term association matrix is used to build a general term network. A set of terms having similar attributes can then be given to extract the desired sub-network from the general term network for visualization. This analysis scenario based on the collective terms of the similar type or from the same source enables evidence-based relation exploration. Some practical instances of crime investigations were demonstrated. Our application examples show that term relations, be it causality, coupling, or others, can be effectively revealed by our method and verified by the underlying corpus. This work contributes by presenting an efficient and effective term-relationship mining method and extending the applicability of term networks to a broader range of informatic tasks.
机译:为实体关系可视化和探索提供了一种构建一般术语网络的有效术语挖掘方法。首先确定来自语料库中的每个文档的术语。它们对其协会的重量进行分析,这些重量累积在每个术语对的所有文件中。得到的术语关联矩阵用于构建一般术语网络。然后可以给出具有类似属性的一组术语来从通用术语网络中提取所需的子网以进行可视化。该分析方案基于类似类型或来自相同来源的集体术语,使基于证据的关系探索能够实现。证明了一些实际的犯罪行为。我们的应用程序示例显示,我们的方法可以有效地揭示了术语关系,是意外关系,并通过底层语料库验证。这项工作通过呈现有效且有效的术语关系挖掘方法,并将术语网络的适用性扩展到更广泛的信息任务。

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